Progress Of Low-Temperature Carbonization of Cellulose as Anode Material for Sodium-Ion Batteries
DOI:
https://doi.org/10.54097/8sr0ea06Keywords:
Cellulose, carbonization, anode materials, sodium-ion batteries.Abstract
With the increasingly serious environmental issues brought by the use of conventional fossil energy sources, and under the idea of "carbon peak and carbon neutral" put forward by China, it has been a global consensus to drive the transition of the energy consumption framework from conventional fossil energy sources to low-carbon, clean reproducible energy sources, and associated energy preservation technologies. So far, secondary battery systems as stable and efficient clean energy storage have been the focus of attention, and the most important energy storage devices are lithium-ion batteries (LIBs) and sodium-ion batteries (SIBs), which are also potential battery systems under recent research. Nevertheless, the scarcity and grossly uneven allocation of lithium resources as well as the security problems of lithium batteries have limited the further growth of LIBs. Due to these problems, the scientific community has been back to sodium-ion battery studies. By comparing with lithium-ion batteries, sodium resources for sodium-ion batteries are cheaper, richer, and safer, so the social demand for sodium-ion batteries continues to increase, but the larger the ionic radius of sodium ions, the poorer the reversible capacity, the shorter the life span and other problems still exist, and the development of high-performance anode materials is an effective method to solve the core problems of sodium-ion batteries, cellulose-based hard carbon materials have a green preparation process, favorable ion Cellulose-based hard carbon material is a potential anode material for sodium-ion batteries with the green preparation process, beneficial ion transport channel and special porous framework.
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Wang L, Tian H, Yao X, Cai Y, Gao Z, & Su Z. (2024). Research Progress and Modification Measures of Anode and Cathode Materials for Sodium‐Ion Batteries. ChemElectroChem, 11(1), e202300414.
Mathiyalagan K, Shin D, & Lee, Y. C. (2023). Difficulties, strategies, and recent research and development of layered sodium transition metal oxide cathode materials for high-energy sodium-ion batteries. Journal of Energy Chemistry.
Fang Y, Luan D, Lou X W. (2020). Recent advances on mixed metal sulfides for advanced sodium‐ion batteries. Advanced Materials, 32(42), 2002976.
Luo M, Yu H, Hu F, et al. (2020). Metal selenides for high performance sodium ion batteries. Chemical Engineering Journal, 380, 122557.
Wang L, Tian H, Yao X, et al. (2024). Research Progress and Modification Measures of Anode and Cathode Materials for Sodium‐Ion Batteries. ChemElectroChem, 11(1), e202300414.
Kong F, Lv L, Gu Y, et al. (2019). Nano-sized FeSe2 anchored on reduced graphene oxide as a promising anode material for lithium-ion and sodium-ion batteries. Journal of Materials Science, 54(5), 4225-4235.
Guo Y D, Jiang J C, Xie J, et al. (2022). Enhanced performance of core–shell structured sodium manganese hexacyanoferrate achieved by self-limiting Na+–Cs+ ion exchange for sodium-ion batteries. Rare Metals, 41(11), 3740-3751.
Liu R, Liang Z, Gong Z, et al. (2019). Research Progress in Multielectron Reactions in Polyanionic Materials for Sodium‐Ion Batteries. Small Methods, 3(4), 1800221.
Xie B, Sun B, Gao T, et al. (2022). Recent progress of Prussian blue analogues as cathode materials for nonaqueous sodium-ion batteries. Coordination Chemistry Reviews, 460, 214478.
Ding Y, Ding F, Rong X, et al. (2022). Mg-doped layered oxide cathode for Na-ion batteries. Chinese Physics B, 31(6), 068201.
Wei F, Zhang Q, Zhang P, et al. (2021). Research progress on layered transition metal oxide cathode materials for sodium ion batteries. Journal of The Electrochemical Society, 168(5), 050524.
Zhang L, Wang W, Lu S, et al. (2021). Carbon anode materials: a detailed comparison between Na‐ion and K‐ion batteries. Advanced Energy Materials, 11(11), 2003640.
Li L, Sun M, Xu Z, et al. (2023). Hierarchical porous hard carbon derived from rice husks for high-performance sodium ion storage. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 661, 130927.
Gao Y, Piao S, Jiang C, et al. (2022). Navel orange peel-derived hard carbons as high-performance anode materials of Na and Li-ion batteries. Diamond and Related Materials, 129, 109329.
Zhu X, Li Q, Qiu S, et al. (2016). Hard carbon fibers pyrolyzed from wool as high-performance anode for sodium-ion batteries. Jom, 68, 2579-2584.
Wang H, Chen H, Chen C, et al. (2023). Tea-derived carbon materials as anode for high-performance sodium ion batteries. Chinese Chemical Letters, 34(4), 107465.
Lee M E, Kwak H W, Jin H J, et al. (2019). Waste beverage coffee-induced hard carbon granules for sodium-ion batteries. ACS Sustainable Chemistry & Engineering, 7(15), 12734-12740.
Qin L, Xu S, Lu Z, et al. (2023). Cellulose as a novel precursor to construct high-performance hard carbon anode toward enhanced sodium-ion batteries. Diamond and Related Materials, 110065.
Zhang T, Zhang T, Wang F, et al. (2023). Pretreatment Process Before Heat Pyrolysis of Plant‐based Precursors Paving Way for Fabricating High‐Performance Hard Carbon for Sodium‐Ion Batteries. ChemElectroChem, 10(24), e202300442.
Li P, Guo X, Zang R, et al. (2021). Nanoconfined SnO2/SnSe2 heterostructures in N-doped carbon nanotubes for high-performance sodium-ion batteries. Chemical Engineering Journal, 418, 129501.
Zeng L, Xi H X , Liu X , et al. (2021). Coaxial electrospinning construction Si@C core–shell nanofibers for advanced flexible lithium-ion batteries. Nanomaterials, 11(12), 3454.
Zhang T, Zhang T, Wang F, et al. (2023). Pretreatment Process Before Heat Pyrolysis of Plant‐based Precursors Paving Way for Fabricating High‐Performance Hard Carbon for Sodium‐Ion Batteries. ChemElectroChem, 10(24), e202300442.
Zhou G, Mo L, Zhou C, et al. (2020). Flexible naphthalene-based polyimide nanofiber cathode with hierarchical micro/nanoporous structure for high-performance organic sodium-ion batteries. Composites Communications, 22, 100490.
He X X, Liu X H, Yang Z, et al. (2021). Research progress of flexible sodium-ion batteries derived from renewable polymer materials. Electrochemistry Communications, 128, 107067.
Zhou G, Mo L, Zhou C, et al. (2020). Flexible naphthalene-based polyimide nanofiber cathode with hierarchical micro/nanoporous structure for high-performance organic sodium-ion batteries. Composites Communications, 22, 100490.
Ghani U, Iqbal N, Aboalhassan A A, et al. (2022). One-step sonochemical fabrication of biomass-derived porous hard carbons; towards tuned-surface anodes of sodium-ion batteries. Journal of colloid and interface science, 611, 578-587.
Stevens D A, Dahn J R. (2000). High-capacity anode materials for rechargeable sodium‐ion batteries. Journal of the Electrochemical Society, 147(4), 1271.
Zhang T, Zhang T, Wang F, et al. (2023). Pretreatment Process Before Heat Pyrolysis of Plant‐based Precursors Paving Way for Fabricating High‐Performance Hard Carbon for Sodium‐Ion Batteries. ChemElectroChem, 10(24), e202300442.
Ruiqi D, Feng W, Ying B, et al. (2021). Sodium storage mechanism and optimization strategies for hard carbon anode of sodium ion batteries. Acta Chimica Sinica, 79(12), 1461.
Huang, X. (2009). Fabrication and properties of carbon fibers. Materials, 2(4), 2369-2403.
Junior I I, Do Nascimento M A, de Souza R O M A, et al. (2020). Levoglucosan: a promising platform molecule. Green Chemistry, 22(18), 5859-5880.
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